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Computer Research and Modeling, 2024, Volume 16, Issue 2, Pages 525–554
DOI: https://doi.org/10.20537/2076-7633-2024-16-2-525-554
(Mi crm1176)
 

ANALYSIS AND MODELING OF COMPLEX LIVING SYSTEMS

Modeling the dynamics of plankton community considering the trophic characteristics of zooplankton

O. L. Zhdanovaa, G. P. Neverovaa, E. Ya. Frismanb

a Institute of Automation and Control Processes, Far Eastern Branch of RAS 5 Radio st., Vladivostok, 690041, Russia
b Institute for Complex Analysis of Regional Problems, Far Eastern Branch of RAS, 4 Sholom-Aleikhem st., Birobidzhan, 679016, Russia
References:
Abstract: We propose a four-component model of a plankton community with discrete time. The model considers the competitive relationships of phytoplankton groups exhibited between each other and the trophic characteristics zooplankton displays: it considers the division of zooplankton into predatory and non-predatory components. The model explicitly represents the consumption of non-predatory zooplankton by predatory. Non-predatory zooplankton feeds on phytoplankton, which includes two competing components: toxic and non-toxic types, with the latter being suitable for zooplankton food. A model of two coupled Ricker equations, focused on describing the dynamics of a competitive community, describes the interaction of two phytoplanktons and allows implicitly taking into account the limitation of each of the competing components of biomass growth by the availability of external resources. The model describes the prey consumption by their predators using a Holling type II trophic function, considering predator saturation.
The analysis of scenarios for the transition from stationary dynamics to fluctuations in the population size of community members showed that the community loses the stability of the non-trivial equilibrium corresponding to the coexistence of the complete community both through a cascade of period-doubling bifurcations and through a Neimark – Sacker bifurcation leading to the emergence of quasi-periodic oscillations. Although quite simple, the model proposed in this work demonstrates dynamics of community similar to that natural systems and experiments observe: with a lag of predator oscillations relative to the prey by about a quarter of the period, long-period antiphase cycles of predator and prey, as well as hidden cycles in which the prey density remains almost constant, and the predator density fluctuates, demonstrating the influence fast evolution exhibits that masks the trophic interaction. At the same time, the variation of intra-population parameters of phytoplankton or zooplankton can lead to pronounced changes the community experiences in the dynamic mode: sharp transitions from regular to quasi-periodic dynamics and further to exact cycles with a small period or even stationary dynamics. Quasi-periodic dynamics can arise at sufficiently small phytoplankton growth rates corresponding to stable or regular community dynamics. The change of the dynamic mode in this area (the transition from stable dynamics to quasi-periodic and vice versa) can occur due to the variation of initial conditions or external influence that changes the current abundances of components and shifts the system to the basin of attraction of another dynamic mode.
Keywords: community dynamics, bifurcations, dynamic modes, multistability, Ricker model, competition, prey – predator interaction, cryptic cycles
Funding agency Grant number
Ministry of Science and Higher Education of the Russian Federation FWFW-2021-0004
FWUG 2024-0005
The research was carried out within the state assignments of IACP FEB RAS (Theme FWFW-2021-0004) and CARPI (Theme FWUG 2024-0005).
Received: 25.12.2023
Revised: 01.02.2024
Accepted: 05.02.2024
Document Type: Article
UDC: 51-76+574.34+574.5
Language: Russian
Citation: O. L. Zhdanova, G. P. Neverova, E. Ya. Frisman, “Modeling the dynamics of plankton community considering the trophic characteristics of zooplankton”, Computer Research and Modeling, 16:2 (2024), 525–554
Citation in format AMSBIB
\Bibitem{ZhdNevFri24}
\by O.~L.~Zhdanova, G.~P.~Neverova, E.~Ya.~Frisman
\paper Modeling the dynamics of plankton community considering the trophic characteristics of zooplankton
\jour Computer Research and Modeling
\yr 2024
\vol 16
\issue 2
\pages 525--554
\mathnet{http://mi.mathnet.ru/crm1176}
\crossref{https://doi.org/10.20537/2076-7633-2024-16-2-525-554}
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